Methods and apparatus are provided for generating a vertical situational image of a vehicle. The apparatus for generating a vertical situational image of the vehicle is comprised of an input device configured to receive flight plan data of the vehicle and a situational display configured to produce the vertical situational image from the flight plan data. The apparatus for generating a vertical situational image of the vehicle is further comprised of a processing device that is configured to receive the flight plan data from the input device, generate a first segment having a first slope in a first viewable range of the vertical situational image from the flight plan data and determine the first segment in a second viewable range of the vertical situational image. The processing device of the apparatus for generating a vertical situational image of the vehicle is further configured to modify the second viewable range to substantially maintain the first slope of the first segment if a viewable altitude of the vertical situational image is greater than an altitude threshold.
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13. A method for generating a vertical situational image of a vehicle, comprising:
receiving flight plan data; generating a first segment in a first viewable range of the vertical situational image from said flight plan data; said first segment having a first slope in said first viewable range of the vertical situational image; determining said first segment in a second viewable range of the vertical situational image; and modifying said second viewable range to substantially maintain said first slope of said first segment if a viewable altitude of the vertical situational image is greater than a viewable altitude threshold.
1. An apparatus for generating a vertical situational image of a vehicle, comprising:
an input device configured to receive flight plan data of the vehicle; a situational display configured to produce the vertical situational image from said flight plan data; and a processing device configured to: receive said flight plan data from said input device; generate a first segment in a first viewable range of the vertical situational image from said flight plan data; said first segment having a first slope in said first viewable range of the vertical situational image; determine said first segment in a second viewable range of the vertical situational image; and modify said second viewable range to substantially maintain said first slope of said first segment if a viewable altitude of the vertical situational image is greater than a viewable altitude threshold. 2. The apparatus for generating a vertical situational image of the vehicle of
3. The apparatus for generating the vertical situational image of the vehicle of
4. The apparatus for generating the vertical situational image of the vehicle of
5. The apparatus for generating the vertical situational image of the vehicle of
6. The apparatus for generating the vertical situational image of the vehicle of
7. The apparatus for generating the vertical situational image of the vehicle of
generate a second segment in said first viewable range of the vertical situational image from said flight plan data; said second segment having a second slope in said first viewable range of the vertical situational image; determine said second segment in said second viewable range of the vertical situational image; and modify said second viewable range to substantially maintain said second slope of said second segment if said viewable altitude of the vertical situational image is greater than said altitude threshold.
8. The apparatus for generating the vertical situational image of the vehicle of
generate a plurality of segments in addition to said first segment in said first viewable range of the vertical situational image from said flight plan data; said plurality of segments having a plurality of slopes in said first viewable range of the vertical situational image; determine said plurality of segments in said second viewable range of the vertical situational image; and modify said second viewable range to substantially maintain said plurality of slopes of said plurality of segments if said viewable altitude of the vertical situational image is greater than said altitude threshold.
9. The apparatus for generating the vertical situational image of the vehicle of
10. The apparatus for generating the vertical situational image of the vehicle of
11. The apparatus for generating the vertical situational image of the vehicle of
12. The apparatus for generating the vertical situational image of the vehicle of
14. The method for generating the vertical situational image of the vehicle of
15. The method for generating the vertical situational image of the vehicle of
16. The method for generating the vertical situational image of the vehicle of
17. The method for generating the vertical situational image of the vehicle of
18. The method for generating the vertical situational image of the vehicle of
19. The method for generating the vertical situational image of the vehicle of
generating a second segment in said first viewable range of the vertical situational image from said flight plan data; said second segment having a second slope in said first viewable range of the vertical situational image; determining said second segment in said second viewable range of the vertical situational image; and modifying said second viewable range to substantially maintain said second slope of said second segment if said viewable altitude of the vertical situational image is greater than said altitude threshold.
20. The method for generating the vertical situational image of the vehicle of
generating a plurality of segments in addition to said first segment in said first viewable range of the vertical situational image from said flight plan data; said plurality of segments having a plurality of slopes in said first viewable range of the vertical situational image; determining said plurality of segments in said second viewable range of the vertical situational image; and modifying said second viewable range to substantially maintain said plurality of slopes of said plurality of segment if said viewable altitude of the vertical situational image is greater than said altitude threshold.
21. The method for generating the vertical situational image of the vehicle of
22. The method for generating the vertical situational image of the vehicle of
23. The method for generating the vertical situational image of the vehicle of
24. The method for generating the vertical situational image of the vehicle of
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The present invention relates to a display of a vehicle, and more particularly to a method and apparatus for generating a vertical situational display of a vehicle.
One of the many functions of a vertical situational display or VSD is to produce an image of a flight path from a current position of a vehicle to a destination. For example, the operator uses the flight path as a reference for lateral (i.e., range) guidance and vertical (i.e., altitude) guidance. The flight path is generally comprised of climb segments and descent segments typically defined by waypoints that begin at an origin threshold and end at a destination threshold. The climb, enroute and descent segments form a flight plan or FPL and the flight plan is visually displayed on the vertical situational display as a vertical situational image.
Generally, the image of a flight plan is produced on a vertical profile display located at a lower portion of a multi-function display or MFD. An input interface allows the operator to input a flight plan and develop the vertical profile. A processing device coupled to the input receives the input from the operator and generates the vertical profile of climb and descent segments. The climb, enroute and descent segments of the flight plan are typically generated using the linear equation of Y=MX, where Y is the altitude (i.e., vertical distance), X is the range and M is the slope, which is the ratio of the altitude to the range (i.e., M (the slope)=Y (altitude) /X (range).
Vertical situational displays use a number of techniques to generate the climb and descent segments of the flight plan in response to an operator input. For example, when a flight crewmember alters the range (X), the vertical situational display maintains a fixed altitude (Y). Therefore, as the flight crewmember alters the range (X) of the vertical profile, the climb angle or descent angle also changes and the slope of the climb segment and/or descent segment varies.
The suggestion has been made to use a constant slope (M) technique to improve a display that uses the varying slope technique. In contrast to a varying slope technique as briefly described in the preceding paragraph, the constant slope technique maintains a substantially constant or constant slope with an alteration of the range (X) through a modification of the altitude (Y). While the use of a constant slope technique significantly reduces the appearance on a display that the slope of the climb segment and/or descent segment varies with the alteration of the range (X), the use of a constant slope technique to display the climb segments and/or descent segments of a vertical situational image on a vertical situational display can cause a number of less than desirable visual display effects. For example, the flight plan can compress on the vertical situation display viewing area and reduce the visual reference and effectiveness for the operator of a vehicle.
In view of the foregoing, it should be appreciated that it would be desirable to provide methods and apparatus for generating a vertical situational display of a vehicle with a substantially constant or constant slope technique. In addition, it should be appreciated that it would be desirable to provide methods and apparatus for generating a vertical situational display of a vehicle with a substantially constant or constant slope technique with a reduction in undesirable display effects, such as compression of the vertical situational image on the vertical situational display. Furthermore, additional desirable features will become apparent to one skilled in the art from the foregoing background of the invention and following detailed description of a preferred exemplary embodiment and appended claims.
An apparatus and method are provided for generating a vertical situational image of a vehicle. The apparatus for generating a vertical situational image of the vehicle is comprised of an input device configured to receive flight plan data of the vehicle and a situational display configured to produce the vertical situational image from the flight plan data. The apparatus for generating a vertical situational image of the vehicle is further comprised of a processing device that is configured to receive the flight plan data from the input device, generate a first segment having a first slope in a first viewable range for the vertical situational image from the flight plan data and determine the first segment in a second viewable range of the vertical situational image. The processing device of the apparatus for generating a vertical situational image of the vehicle is further configured to modify the second viewable range to substantially maintain the first slope of the first segment if a viewable altitude of the vertical situational image is greater than an altitude threshold.
The present invention will hereinafter be described in conjunction with the appended drawing figures, wherein like numerals denote like elements, and:
The following detailed description of a preferred embodiment is merely exemplary in nature and is not intended to limit the invention or the application and uses of the invention.
Referring to
The apparatus 10 for generating the vertical situational image 12 of the aircraft is also comprised of a processing device 22 that is configured to receive the flight plan data from the input device 14 and generate a segment and preferably multiple segments such as climb segments 24 and/or a descent segment 26 of a flight plan (FPL) having waypoints (28,30,32,34,36) and an aircraft location symbol 38. The segment (e.g., the climb segments 24 and/or descent segment 26) is generated in a viewable range 40 and a viewable altitude 42 with the segment having a slope (i.e., slope (M)=altitude (Y)/range (X)) in the viewable range 40 of the vertical situational image 12. The processing device 22 is also configured to determine the segment in a second viewable range of the vertical situational image 12 and modify the second viewable range to substantially maintain the slope of the segment if a second viewable altitude, which provides the substantially constant slope in the second viewable range is greater than an altitude viewable threshold.
More specifically, the segments (e.g., the climb segments 24 and/or descent segment 26) are provided between the waypoints (e.g., segments 28,30,32,34,36) as part of the flight plan. While five waypoints are illustrated in this example, it should be appreciated that any number of waypoints can be provided for the flight plan and also any number of climb segments and descent segments can be provided between any number of waypoints. In accordance with the present invention, the segment or segments provided between the waypoints are determined with a constant slope method or constant slope technique. The constant slope method is comprised of maintaining a substantially constant slope (M) or constant slope (M) when the operator of the aircraft adjusts the viewable range (X) on the vertical situational display (VSD). The substantially constant slope or constant slope is maintained when the operator of the aircraft adjusts the viewable range with a modification of the viewable altitude (Y). As can be appreciated by one of ordinary skill in the art and as discussed in the background of the invention, the relationship between the slope, range and altitude is a linear relationship as follows:
Where Y is the altitude (i.e., vertical distance of the vertical situational image), X is the range (i.e., horizontal distance of the vertical situational image) and M is the slope. Therefore, a substantially constant aspect ratio or constant aspect ratio between the altitude (Y) and range (X) (i.e., M=Y/X) is maintained to provide a substantially constant or constant slope (i.e., the altitude (Y) is adjusted to maintain the same value for the slope (M) as the range (X) is adjusted by the operator).
For example, and with reference to
Referring to
More specifically, the processing device 22 of
Referring to
In accordance with another preferred embodiment of the present invention and with reference to
For example and with reference to
From the foregoing detailed description of preferred exemplary embodiments, it should be appreciated that apparatus and methods are provided for generating a vertical situational image of a vehicle. While preferred exemplary embodiments have been presented in the foregoing detailed description of preferred exemplary embodiments, it should be appreciated that a vast number of variations exist. It should also be appreciated that these preferred exemplary embodiments are only examples, and are not intended to limit the scope, applicability, or configuration of the invention in any way. Rather, the ensuing detailed description will provide those skilled in the art with a convenient road map for implementing a preferred embodiment of the invention. It being understood that various changes may be made in the function and arrangement of elements described in an exemplary preferred embodiment without departing from the spirit and scope of the invention as set forth in the appended claims.
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